Influence of microstructures on mechanical properties and tribology behaviors of TiN/TixAl1 (-) N-x multilayer coatings

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TitreInfluence of microstructures on mechanical properties and tribology behaviors of TiN/TixAl1 (-) N-x multilayer coatings
Type de publicationJournal Article
Year of Publication2017
AuteursWang J, Yazdi MArab Pour, Lomello F, Billard A, Kovacs A, Schuster F, Guet C, White TJ, Sanchette F, Dong Z
JournalSURFACE & COATINGS TECHNOLOGY
Volume320
Pagination441-446
Date PublishedJUN 25
Type of ArticleArticle; Proceedings Paper
ISSN0257-8972
Mots-clésCathodic arc deposition, Nano-multilayers, nanoindentation, Transmission electron microscope, tribology
Résumé

There are demands to form nanolayered coating consisting of different materials in order to enhance the coating mechanical properties. However, poor structure control may lead to the formation of second phase and various defects. In this work, we endeavored to use cathodic arc deposition (CAD) method to fabricate TiN/ri(x)Al(1) (-) N-x nanolayered coatings with periods (A) ranging from 8 to 45 nm, which has great influences on coating microstructures and properties. X-ray diffraction (XRD), electron microscopy, nanoindentation and tribometry were employed to correlate coating microstructure and A with mechanical properties and wear resistance. The nanolayered coatings consisted of columnar grains with [111] texture, where individual grains contained low angle grain boundaries without voids and amorphous phases. As A decreased, superlattices were generated, and reducing A from 45 nm to 13 nm yielded coatings with superior mechanical properties. The hardness peaked at 38.9 +/- 3.6 GPa with a Young's modulus at 502.5 +/- 40.4 GPa at 13 nm, however, when the Lambda decreased to 8 nm the hardness and the Young's modulus deteriorated. It was concluded that wear resistance improved as the A decreased due to the greater interface population that impedes crack propagation. (C) 2016 Elsevier B.V. All rights reserved.

DOI10.1016/j.surfcoat.2016.11.101